EP2922932A1 - Materialien für elektronische vorrichtungen - Google Patents
Materialien für elektronische vorrichtungenInfo
- Publication number
- EP2922932A1 EP2922932A1 EP13782978.4A EP13782978A EP2922932A1 EP 2922932 A1 EP2922932 A1 EP 2922932A1 EP 13782978 A EP13782978 A EP 13782978A EP 2922932 A1 EP2922932 A1 EP 2922932A1
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Definitions
- the present application relates to a compound of the formula (I) which contains a carbazole unit and an arylamino unit.
- the compound is suitable for use as a functional material in one
- the present application relates to a process for the preparation of the compound of formula (I).
- organic electronic devices are understood as meaning in particular so-called organic electronic devices (organic electronic devices), which are organic
- OLED optical light-emitting diode
- triarylamine compounds in electronic devices. These can be mono-triarylamines, as described, for example, in JP 1995/053955, WO 2006/123667 and JP 2010/222268, or bis- or higher-value amines, as described, for example, in US Pat. No. 7504,163 or US 2005/0184657.
- Known examples include tris-p-biphenylamine, N, N'-di-1-naphthyl-N, N'-diphenyl-1, 1'-biphenyl-4,4'-diamine (NPB) and 4, 4 ', 4 "-Tris- (3-methylphenylphenylamino) triphenylamine (MTDATA).
- Carbazole unit have. Such compounds are used in particular in emitting layers as host materials.
- Known is inter alia the compound CBP ( ⁇ , ⁇ -biscarbazolylbiphenyl) or
- hole-transporting compounds which have both carbazole groups and triarylamino groups and in which the groups are linked via linker units such as phenylene (JP 2007-110093).
- linker units such as phenylene
- Carbazole groups per molecule present are useful as functional materials for use in OLEDs.
- Formula (I) wherein: is a carbazole group which may be substituted with one or more R 1 radicals and which is attached via the carbazole nitrogen atom;
- Ar 1 is the same or different at each occurrence an aryl or
- Ring atoms which may be substituted by one or more R 2 radicals;
- a carbazole group is also understood as meaning carbazole groups in which one or more
- carbazole groups in which the carbazole five-membered ring is extended to a six-membered ring, so that opposite to the nitrogen atom, for example, a methylene, silylene, oxygen or sulfur bridge is arranged. This results in the first case, for example, a unit which is also referred to as dihydroacridine.
- carbazole groups with fused-on groups such as indenocarbazoles or Indolocarbazole understood. Under the carbazole nitrogen atom is within the meaning of the present
- An aryl group in the sense of this invention contains 6 to 60 aromatic ring atoms;
- a heteroaryl group contains 5 to 60 aromatic ring atoms, at least one of which represents a heteroatom.
- the heteroatoms are preferably selected from N, O and S. This is the basic definition. If in the description of the present invention other preferences are given,
- an aryl group or heteroaryl group is either a simple aromatic cycle, ie benzene, or a simpler one
- heteroaromatic cycle for example pyridine, pyrimidine or Thiophene, or a condensed (fused) aromatic or
- heteroaromatic polycycle for example, naphthalene, phenanthrene, quinoline or carbazole understood.
- a condensed (fused) aromatic or heteroaromatic polycycle consists of two or more simple aromatic or heteroaromatic rings condensed together.
- Phenanthridine benzo-5,6-quinoline, benzo-6,7-quinoline, benzo-7,8-quinoline, phenothiazine, phenoxazine, pyrazole, indazole, imidazole, benzimidazole, naphthimidazole, phenanthrimidazole, pyrimididazole, pyrazine imidazole, quinoxaline imidazole, oxazole, Benzoxazole, naphthoxazole, anthroxazole, phenanthroxazole, isoxazole,, 2-thiazole, 1, 3-thiazole, benzothiazole,
- the invention will be understood to mean an aryl group as defined above which is attached via an oxygen atom.
- An analogous definition applies to heteroaryloxy groups.
- An aromatic ring system in the sense of this invention contains 6 to 60 carbon atoms in the ring system.
- a heteroaromatic ring system in the sense This invention contains 5 to 60 aromatic ring atoms, at least one of which represents a heteroatom.
- the heteroatoms are preferably selected from N, O and / or S.
- An aromatic or heteroaromatic ring system in the sense of this invention is to be understood as meaning a system which does not necessarily contain only aryl or heteroaryl groups but in which also several aryl or heteroaryl groups a non-aromatic moiety (preferably less than 10% of the atoms other than H), such as e.g. B.
- an sp 3 - hybridized C, Si, N or O atom, an sp 2 -hybridized C or N atom or a sp-hybridized carbon atom may be connected.
- systems such as 9,9'-spirobifluorene, 9,9'-diarylfluorene, triarylamine, diaryl ethers, stilbene, etc. are to be understood as aromatic ring systems in the context of this invention, and also systems in which two or more aryl groups, for example by a linear or cyclic alkyl, alkenyl or alkynyl group or linked by a silyl group.
- systems in which two or more aryl or heteroaryl groups are linked together via single bonds are understood as aromatic or heteroaromatic ring systems in the context of this invention, such as systems such as biphenyl, terphenyl or diphenyltriazine.
- An aromatic or heteroaromatic ring system having 5-60 aromatic ring atoms, which may be substituted in each case by radicals as defined above and which may be linked via any positions on the aromatic or heteroaromatic compounds, is understood in particular to mean groups derived from benzene, naphthalene .
- alkoxy or thioalkyl group having 1 to 40 carbon atoms methoxy, trifluoromethoxy, ethoxy, n-propoxy, i-propoxy, n-butoxy, i-butoxy, s-butoxy, t-butoxy, n-pentoxy, s Pentoxy, 2-methylbutoxy, n-hexoxy, cyclohexyloxy, n-heptoxy, cycloheptyloxy, n-octyloxy,
- n is equal to 3, 4 or 5, more preferably equal to 3 or 4, most preferably equal to 3.
- the compound of the formula (I) contains no further arylamino group in addition to the arylamino group shown.
- an arylamino group is understood to mean a group in which at least one aryl group or heteroaryl group is bonded to a trivalent nitrogen atom. How the group is structured or what other groups it contains is irrelevant to the definition.
- the compound contains the Formula (I) next to the arylamino group shown no further
- the compound of formula (I) does not contain a fused aryl or heteroaryl group having more than 14 aromatic ring atoms. It particularly preferably contains no condensed aryl or heteroaryl group having more than 10 aromatic ring atoms.
- heteroaromatic ring system having 5 to 20 aromatic ring atoms, each of which may be substituted by one or more radicals R 3 , where two or more radicals R 1 may be linked together and form a ring.
- heteroaromatic ring system having 5 to 20 aromatic ring atoms, each of which may be substituted by one or more radicals R 4 , wherein two or more radicals R 3 may be linked together and form a ring.
- Cbz is selected from groups of the formula (Cbz)
- Z is the same or different CR 1 or N at each occurrence, where Z is C when a group E 1 or E 2 is attached;
- Y is a single bond, C (R 1 ) 2 , Si (R) 2 , O, or S; is the same or different at each occurrence 0 or 1; wherein the group of formula (Cbz) is linked via the bond marked with *.
- the sum of the indices k in the group of the formula (Cbz) is 0 or 1. Most preferably, it is 0, i. all indices k are equal to 0.
- Y in the group of the formula (Cbz) is a single bond.
- not more than three groups Z in the group of the formula (Cbz) in an aromatic ring is N. Furthermore, it is preferred that no more than two adjacent groups Z in an aromatic ring are equal to N. Furthermore, it is preferable that not more than one group Z per aromatic ring is N.
- Z in the group of formula (Cbz) is CR 1 , and in case that one group E 1 or E 2 is attached to Z, then group Z is C.
- the groups E 1 and E 2 in the group of the formula (Cbz) bind to the positions which are in para position to the groups Y and N on the aromatic six-membered rings. These are marked with the # sign in the following scheme:
- Cbz is selected from groups of the formula (Cbz-I) to (Cbz-10)
- R 1 , R 2 and R 3 are as defined above as being preferable.
- formulas (Cbz-1) and (Cbz-4) are particularly preferred.
- Ar 1 is preferably identical or different on each occurrence and is an aryl or heteroaryl group having 6 to 10 aromatic ring atoms, which may be substituted by one or more radicals R 2 , and wherein individual groups Ar 1 may also be linked to one another via radicals R 2 .
- Ar 1 is more preferably identical or different on each occurrence and is an aryl or heteroaryl group having 6 aromatic groups
- Ar 1 is selected from ortho-phenylene, meta-phenylene and para-phenylene, each of which may be substituted with one or more R 2 groups, and wherein individual Ar 1 groups may also be linked via R 2 groups.
- Dibenzofuran phenomenon or Dibenzothiophen development be formed, preferably fluorene groups.
- At least one group Ar 1 is selected from ortho-phenylene or meta-phenylene, preferably from meta-phenylene, where the groups may be substituted by one or more radicals R 2 .
- Particularly preferred are at least two groups Ar 1 selected from ortho-phenylene or meta-phenylene, preferably from meta-phenylene, where the groups may be substituted by one or more radicals R 2 .
- n is 3 and the middle one of the three
- Groups Ar 1 is meta-phenylene or ortho-phenylene, which may be substituted with one or more R 2 .
- n is 4, and one or both of the two middle of the four groups Ar 1 are meta-phenylene or ortho-phenylene wherein the meta-phenylene or ortho-phenylene is one or more R 2 may be substituted.
- Ar 2 is preferably the same or different selected on each occurrence from an aromatic or heteroaromatic ring system with 6 to 24 aromatic ring atoms, which may be substituted by one or more radicals R 2 .
- Ar 2 is preferably the same or different selected on each occurrence from an aromatic or heteroaromatic ring system with 6 to 24 aromatic ring atoms, which may be substituted by one or more radicals R 2 .
- Very particular preference is given to including phenyl, biphenyl, naphthyl, terphenyl, fluorenyl, spirobifluorene, Indenofluorenyl, dibenzofuran, and dibenzothiophene, which may be substituted with one or more radicals R.sub.2.
- Cbz corresponds to formula (Cbz-1) or (Cbz-4) as defined above; Ar 1 "1 to Ar 1" are defined as Ar 1 above; Ar 2 is defined as Ar 2 above; x is 0 or 1.
- Embodiments of groups are also preferred.
- Ar 1 is the same or different on each occurrence and is an aryl or heteroaryl group having 6 to 10 aromatic ring atoms, which may be substituted by one or more R 2 groups, and individual Ar 1 groups are also linked via R 2 groups could be.
- Ar 1 is more preferably identical or different on each occurrence and is an aryl or heteroaryl group having 6 aromatic groups Ring atoms which may be substituted by one or more radicals R 2 , and wherein individual groups Ar 1 may also be connected via radicals R 2 .
- Ar 1 is selected from ortho-phenylene, meta-phenylene and para-phenylene, each of which may be substituted with one or more R 2 groups, and wherein individual Ar 1 groups may also be linked via R 2 groups.
- m- represents meta-phenylene which may be substituted with one or more R 2 groups as defined above
- o- represents ortho-phenylene having one or more R 2 groups as above defined, may be substituted.
- Ar 1 "1 ortho-phenylene indicates that the group Ar 1" 1 is connected via ortho-standing bonds to the adjacent groups, here Cbz and Ar 1 "2. The same applies to meta-phenylene (meta-standing bonds) ) and para-phenylene (para-standing bonds).
- X / X 2 reactive group, for example halide
- Ar, Ar ', Ar " any aromatic or heteroaromatic ring system
- an N-aryl-carbazole derivative prepared.
- the carbazole derivatives are either commercially available or can be readily prepared. Instead of simple carbazole For example, indenocarbazole or other carbazole derivatives may also be used.
- the aryl compound, with which the coupling reaction is carried out preferably has two reactive functional groups, so that they can be reacted in a further coupling reaction, preferably in a Suzuki coupling, with an arylamino compound.
- Such aryl compounds having two reactive functional groups are also commercially available in many cases or can be easily prepared.
- reaction steps may follow, for example functionalization reactions, to arrive at the final compounds of formula (I).
- the exemplary method shown is particularly suitable for
- the invention thus further provides a process for the preparation of a compound of formula (I), characterized in that a carbazole derivative is reacted in a coupling reaction with an aryl compound.
- the coupling reaction is a Buchwald coupling.
- the aryl compound is a compound having two reactive groups, one of which reacts in the first coupling reaction while the other reacts in a second, subsequent coupling reaction.
- the second, following coupling reaction is a
- arylamino compound preferably a Suzuki coupling reaction.
- reactive leaving groups such as bromine, iodine, chlorine, boronic acid or boronic acid esters
- Suitable reactive leaving groups are, for example, bromine, iodine, chlorine, boronic acids, boronic acid esters, amines,
- Alkenyl or alkynyl groups with terminal C-C double bond or C-C triple bond oxiranes, oxetanes, groups which undergo a cycloaddition, for example a 1, 3-dipolar cycloaddition, such
- dienes or azides for example, dienes or azides, carboxylic acid derivatives, alcohols and silanes.
- Another object of the invention are therefore oligomers, polymers or
- Formula (I), wherein the bond (s) to the polymer, oligomer or dendrimer can be located at any, in formula (I) substituted with R or R 2 substituted positions.
- the compound is part of a side chain of the oligomer or polymer or constituent of the main chain.
- An oligomer in the context of this invention is understood as meaning a compound which is composed of at least three monomer units.
- a polymer in the context of the invention is understood as meaning a compound which is composed of at least ten monomer units.
- the polymers, oligomers or dendrimers according to the invention may be conjugated, partially conjugated or non-conjugated.
- the oligomers or polymers of the invention may be linear, branched or dendritic.
- the units of the formula (I) can be linked directly to one another or they can be linked to one another via a divalent group, for example via a substituted or unsubstituted alkylene group, via a heteroatom or via a divalent aromatic or heteroaromatic group.
- branched and dendritic structures for example, three or more units of formula (I) may be linked via a trivalent or higher valent group, for example via a trivalent or higher valent aromatic or heteroaromatic group, to a branched or dendritic oligomer or polymer.
- the repeat units according to formula (I) in oligomers, dendrimers and polymers the same preferences apply as above for
- the monomers according to the invention are homopolymerized or copolymerized with further monomers.
- Suitable and preferred comonomers are selected from fluorenes (eg according to EP 842208 or WO 00/22026), spirobifluorenes (eg according to EP 707020, EP 894107 or WO 06/061181), paraphenylenes (eg. according to WO 1992/18552), carbazoles (eg according to WO 04/070772 or WO 2004/113468), thiophenes (eg according to fluorenes (eg according to EP 842208 or WO 00/22026), spirobifluorenes (eg according to EP 707020, EP 894107 or WO 06/061181), paraphenylenes (eg. according to WO 1992/18552), carbazoles (eg according to WO 04/070772 or WO 2004/113468), thiophenes (eg according to
- EP 1028136 dihydrophenanthrenes (for example according to WO 2005/014689 or WO 2007/006383), cis and trans indenofluorenes (for example according to WO
- ketones eg according to
- Oligomers and dendrimers usually contain other units, such as emitting (fluorescent or phosphorescent) units, such as.
- emitting (fluorescent or phosphorescent) units such as.
- Vinyltriarylamines for example according to WO 2007/068325
- phosphorescent metal complexes for example according to WO 2006/003000
- charge transport units especially those based on triarylamines.
- the polymers, oligomers and dendrimers according to the invention have advantageous properties, in particular high lifetimes, high
- the polymers and oligomers according to the invention are generally prepared by polymerization of one or more types of monomer, of which at least one monomer in the polymer leads to repeat units of the formula (I).
- Suitable polymerization reactions are known in the art and described in the literature. Particularly suitable and preferred polymerization reactions leading to C-C or C-N linkages are as follows: (A) SUZUKI polymerization; (B) YAMAMOTO polymerization;
- Methyl benzoate mesitylene, tetralin, veratrole, THF, methyl THF, THP, chlorobenzene, dioxane, phenoxytoluene, especially 3-phenoxytoluene, (-) - fenchone, 1, 2,3,5-tetramethylbenzene, 1, 2,4,5 Tetramethylbenzene, 1-methylnaphthalene, 2-methylbenzothiazole, 2-phenoxyethanol, 2-pyrrolidinone, 3-methylanisole, 4-methylanisole, 3,4-dimethylanisole, 3,5-dimethylanisole, acetophenone, ⁇ -terpineol, benzothiazole, butyl benzoate, cumene .
- Triethylene glycol dimethyl ether diethylene glycol monobutyl ether
- Tripropylene glycol dimethyl ether Tripropylene glycol dimethyl ether, tetraethylene glycol dimethyl ether, 2-isopropylnaphthalene, pentylbenzene, hexylbenzene, heptylbenzene,
- the invention therefore further provides a formulation, in particular a solution, dispersion or emulsion containing at least one compound of the formula (I) or at least one Polymer, oligomer or dendrimer comprising at least one unit of the formula (I) and at least one solvent, preferably an organic solvent.
- a formulation in particular a solution, dispersion or emulsion containing at least one compound of the formula (I) or at least one Polymer, oligomer or dendrimer comprising at least one unit of the formula (I) and at least one solvent, preferably an organic solvent.
- the compounds of the formula (I) according to the invention are suitable for use in electronic devices, in particular in organic electroluminescent devices (OLEDs). Depending on the substitution, the compounds are used in different functions and layers.
- OLEDs organic electroluminescent devices
- the electronic device is preferably selected from the group consisting of organic integrated circuits (OICs), organic field effect transistors (OFETs), organic thin film transistors (OTFTs), organic light emitting transistors (OLETs),
- OICs organic integrated circuits
- OFETs organic field effect transistors
- OTFTs organic thin film transistors
- OLETs organic light emitting transistors
- organic solar cells organic solar cells (OSCs), organic optical detectors, organic photoreceptors, organic field quench devices
- OLEDs organic laser diodes
- the invention furthermore relates to an electronic device containing at least one compound of the formula (I).
- the electronic device is preferably selected from the abovementioned devices.
- an organic electroluminescent device comprising anode, cathode and at least one emitting layer, characterized in that at least one organic layer containing an emitting layer, a
- Hole transport layer or another layer at least one compound according to formula (I) contains.
- the compound of the formula (I) is preferably present in a hole transport layer, a hole injection layer, an electron block layer or in an emitting layer.
- the organic electroluminescent device may contain further layers. These are, for example, selected from in each case one or more hole injection layers, hole transport layers, hole blocking layers, electron transport layers, electron injection layers, electron blocking layers, exciton blocking layers, intermediate layers
- the sequence of the layers of the organic electroluminescent device is preferably the following:
- the organic electroluminescent device according to the invention may contain a plurality of emitting layers.
- these emission layers particularly preferably have a total of a plurality of emission maxima between 380 nm and 750 nm, so that overall white emission results, ie. H. in the emitting layers
- three-layer systems ie systems with three emitting layers, wherein preferably at least one of these layers at least one compound according to formula (I) and wherein the three layers show blue, green and orange or red emission (for the basic structure see, for example, WO 2005/011013).
- the basic structure see, for example, WO 2005/011013.
- Compounds according to the invention may also be present in the hole transport layer or in another layer.
- the compound according to formula (I) is used in an electronic device containing one or more phosphorescent dopants.
- the compound can be used in different layers, preferably in a hole transport layer, a hole injection layer, an electron blocking layer or in an emitting layer.
- phosphorescent dopants are typically
- Particularly suitable phosphorescent dopants are compounds which, given suitable excitation, emit light, preferably in the visible range, and also contain at least one atom of atomic number greater than 20, preferably greater than 38 and less than 84, particularly preferably greater than 56 and less than 80.
- Preferred phosphorescence emitters used are compounds containing copper, molybdenum, tungsten, rhenium, ruthenium, osmium, rhodium, iridium, palladium, platinum, silver, gold or europium, in particular compounds containing iridium, platinum or copper.
- the compound according to formula (I) can also according to the invention in an electronic device containing one or more
- the compounds of the formula (I) are used as hole transport material.
- the compounds are then preferably used in a hole transport layer, an electron blocking layer or a hole injection layer.
- a hole transport layer according to the present application is a hole transporting layer located between the anode and the emissive layer.
- a hole injection layer is in the case of multiple hole transport layers between anode and
- emissive layer has a hole transport layer which connects directly to the anode or is separated from it only by a single coating of the anode.
- An electron blocking layer is in the case of a plurality of hole transport layers between the anode and the emitting layer that hole transport layer, which connects directly to the anode side of the emitting layer.
- the organic layer comprising the compound of the formula (I) then additionally contains one or more p-dopants.
- p-dopants preferably those organic electron acceptor compounds are used which can oxidize one or more of the other compounds of the mixture.
- p-dopants are those described in WO 2011/073149, EP 1968131, EP 2276085, EP 2213662, EP 1722602, EP 2045848, DE 102007031220, US 8044390, US 8057712, WO
- the compound according to formula (I) is used as hole transport material in combination with a hexaazatriphenylene derivative as described in US 2007/0092755.
- a hexaazatriphenylenderivat is used in a separate layer.
- the compounds of the formula (I) are used as matrix material in combination with one or more dopants, preferably phosphorescent dopants.
- a dopant is understood to mean the component whose proportion in the mixture is the smaller. Accordingly, under a matrix material in a system comprising a matrix material and a dopant understood that component whose proportion in the mixture is the larger.
- the proportion of the matrix material in the emitting layer is in this case between 50.0 and 99.9% by volume, preferably between 80.0 and 99.5% by volume and particularly preferred for fluorescent emitting layers between 92.0 and 99.5% by volume and for phosphorescent emitting layers between 85.0 and 97.0 vol.%.
- the proportion of the dopant is between 0.1 and
- An emitting layer of an organic electroluminescent device may also contain systems comprising a plurality of matrix materials (mixed-matrix systems) and / or multiple dopants. Also in this case, the dopants are generally those materials whose proportion in the system is smaller and the matrix materials are those materials whose proportion in the system is larger.
- the dopants are generally those materials whose proportion in the system is smaller and the matrix materials are those materials whose proportion in the system is larger.
- the proportion of a single matrix material in the system may be smaller than the proportion of a single dopant.
- the compounds according to formula (I) are used as a component of mixed-matrix systems.
- the mixed-matrix systems preferably comprise two or three different matrix materials, more preferably two different matrix materials.
- One of the two materials preferably provides a material with hole-transporting properties and the other material a material with electron-transporting properties
- the desired electron-transporting and hole-transporting properties of the mixed-matrix components may also be mainly or completely united in a single mixed-matrix component, with the further or the further mixed-matrix components fulfilling other functions.
- the Both different matrix materials can in one
- the mixed-matrix systems may comprise one or more dopants, preferably one or more phosphorescent dopants. Generally, mixed-matrix systems are preferred in
- Matrix system can be used are selected from the below-mentioned preferred matrix materials for phosphorescent dopants or the preferred matrix materials for fluorescent dopants, depending on what type of dopant is used in the mixed-matrix system.
- Preferred phosphorescent dopants for use in mixed-matrix systems are the phosphorescent dopants listed above and in the table below.
- Preferred fluorescent dopants are selected from the class of arylamines.
- An arylamine or an aromatic amine in the context of this invention is understood as meaning a compound which contains three substituted or unsubstituted aromatic or heteroaromatic ring systems bonded directly to the nitrogen. At least one of these aromatic or heteroaromatic ring systems is preferably a fused ring system, more preferably at least 14 aromatic ring atoms.
- Preferred examples of these are aromatic anthracene amines, aromatic anthracenediamines, aromatic pyrenamines, aromatic pyrenediamines, aromatic chrysenamines or aromatic
- an aromatic anthracene amine is meant a compound in which a diarylamino group is bonded directly to an anthracene group, preferably in the 9-position.
- An aromatic anthracenediamine is understood to mean a compound in which two diarylamino groups are bonded directly to an anthracene group, preferably in the 9,10-position.
- Aromatic pyrenamines, pyrenediamines, chrysenamines and chrysenediamines are defined analogously thereto, the diarylamino groups on the pyrene preferably being bonded in the 1-position or in the 1, 6-position.
- emitters are indenofluorenamines or -diamines, for example according to WO 2006/108497 or WO 2006/122630, benzoindenofluoreneamines or -diamines, for example according to WO 2008/006449, and dibenzoindenofluoreneamines or diamines, for example according to WO 2007/140847, and the indenofluorene derivatives with condensed aryl groups disclosed in WO 2010/012328.
- EP 13000012.8 disclosed benzofluorene amines.
- Suitable matrix materials are materials of different substance classes.
- Preferred matrix materials are selected from the classes of the oligoarylenes (for example 2,2 ', 7,7'-tetraphenylspirobifluorene according to EP 676461 or dinaphthylanthracene), in particular the
- Oligoarylenevinylenes eg DPVBi or spiro-DPVBi according to EP 676461
- the polypodal metal complexes eg according to WO 2004/081017)
- the hole-conducting compounds eg according to WO 2004/05891 1
- the electron-conducting compounds in particular ketones, phosphine oxides, sulfoxides, etc.
- the atropisomers for example according to WO 2006/048268
- the boronic acid derivatives for example according to WO 2006/1 17052
- the benzanthracenes for example according to WO 2008/145239.
- Particularly preferred matrix materials are
- an oligoarylene is to be understood as meaning a compound in which at least three aryl or arylene groups are bonded to one another.
- Preferred matrix materials for phosphorescent emitters are, in addition to the compounds according to the invention, aromatic ketones, aromatic phosphine oxides or aromatic sulfoxides or sulfones, eg. B.
- Suitable charge transport materials as used in the hole injection or hole transport layer or in the electron blocking layer or in the
- Electron transport layer of the organic according to the invention is Electron transport layer of the organic according to the invention
- electroluminescent devices can be used, for example, the compounds disclosed in Y. Shirota et al., Chem. Rev. 2007, 107 (4), 953-1010 or other materials such as those known in the art in these layers be used.
- materials for the electron transport layer it is possible to use all materials as used in the prior art as electron transport materials in the electron transport layer.
- aluminum complexes for example Alq 3
- Zirconium complexes for example Zrq 4
- benzimidazole derivatives triazine derivatives
- pyrimidine derivatives pyridine derivatives
- pyrazine derivatives pyrazine derivatives
- Suitable materials are, for example, the materials listed in the following table. Furthermore suitable
- Preferred hole transport materials which can be used in a hole transport, hole injection or electron blocking layer in the electroluminescent device according to the invention are indenofluorenamine derivatives (for example according to WO 06/122630 or WO 06/100896) which are disclosed in EP 1661888 Amine derivatives, hexaazatriphenylene derivatives (eg according to WO 01/049806), amine derivatives with condensed aromatics (eg according to US Pat. No. 5,061,569), the amine derivatives disclosed in WO 95/09147, monobenzoindofluorenamines (eg according to WO 08 / 006449)
- Dibenzoindenofluoreneamines for example according to WO 07/140847), spirobifluorene amines (for example according to WO 2012/034627 or EP 12000929.5 not yet disclosed), fluorene amines (for example according to US Pat
- the compounds of the invention can be used as hole transport materials.
- low work function metals, metal alloys or multilayer structures of various metals are preferable, such as
- Alkaline earth metals alkali metals, main group metals or lanthanides (eg Ca, Ba, Mg, Al, In, Mg, Yb, Sm, etc.).
- alloys of an alkali or alkaline earth metal and silver for example an alloy of magnesium and silver.
- further metals which have a relatively high work function, such as, for example, B. Ag or Al, which then usually combinations of metals, such as Ca / Ag, Mg / Ag or Ba / Ag are used. It may also be preferred to provide a thin intermediate layer of a high material between a metallic cathode and the organic semiconductor
- dielectric constant Suitable examples of these are alkali metal or alkaline earth metal fluorides, but also the corresponding oxides or carbonates (eg LiF, Li 2 O, BaF 2 , MgO, NaF, CsF, Cs 2 CO 3 , etc.). Furthermore, lithium quinolinate (LiQ) can be used for this purpose.
- the layer thickness of this layer is preferably between 0.5 and 5 nm.
- the anode high workfunction materials are preferred.
- the anode has a work function greater than 4.5 eV. Vacuum up.
- metals with a high redox potential such as Ag, Pt or Au, are suitable for this purpose.
- metal / metal oxide electrodes eg Al / Ni / NiO x , Al / PtO x ) may also be preferred. For some applications, at least one of the electrodes must be transparent or
- anode material is conductive mixed metal oxides.
- ITO indium tin oxide
- IZO indium zinc oxide
- the anode can also consist of several layers, for example of an inner layer of ITO and an outer layer of a metal oxide, preferably tungsten oxide,
- Molybdenum oxide or vanadium oxide are examples of Molybdenum oxide or vanadium oxide.
- the device is structured accordingly (depending on the application), contacted and finally sealed, since the life of the devices according to the invention is shortened in the presence of water and / or air.
- Organic electroluminescent device characterized in that one or more layers coated by a sublimation process become.
- the materials are vacuum deposited in vacuum sublimation at an initial pressure less than 10 "5 mbar, preferably less than 10 " 6 mbar. However, it is also possible for the initial pressure to be even lower, for example less than 10.sup.- 7 mbar .
- An organic electroluminescent device is also preferred, which comprises one or more layers with the OVPD (Organic Vapor Phase Deposition) method or with the aid of a The materials are applied at a pressure between 10 ⁇ 5 mbar and 1 bar.
- OVJP Organic Vapor Jet Printing
- an organic electroluminescent device characterized in that one or more layers of solution, such as by spin coating, or with a Any printing method, such as screen printing, flexographic printing, nozzle printing or offset printing, but particularly preferably LITI (Light In Duced Thermal Imaging, Thermal Transfer Printing) or Ink-Jet Printing (Inkjet Printing).
- LITI Light In Duced Thermal Imaging, Thermal Transfer Printing
- Ink-Jet Printing Inkjet Printing
- the compounds of formula (I) can be chosen so that they can be fixed in a layer applied from solution, for example by crosslinking to a polymer network.
- Polymer network is then hardly or not at all soluble in the solvents commonly used in the application to solution. In this way, you can make multiple layers of solution
- Crosslinkable group in the sense of the present application means a functional group capable of undergoing a reaction, preferably a polymerization reaction, to form an insoluble compound.
- the crosslinkable group is thus preferably a polymerizable group.
- a corresponding crosslinked compound is obtained, and thus a sparingly soluble or insoluble layer.
- the crosslinking reaction can be assisted for example by heat or by UV, microwave, X-ray or electron radiation, optionally in the presence of an initiator.
- crosslinkable groups are chemical groups containing terminal or cyclic alkenyl or terminal alkynyl groups, oxetanes, oxiranes or silanes. Particularly preferred crosslinkable groups are the crosslinkable groups disclosed in WO 2013/007348.
- the electronic devices comprising one or more compounds of the formula (I) can be used in displays, as light sources in illumination applications and as light sources in medical and / or cosmetic applications (for example light therapy).
- the residue is recrystallized from toluene.
- the yield is 40.75 g (57 mmol), corresponding to 87.9% of theory.
- inventive OLEDs and OLEDs according to the prior art is carried out according to a general method according to WO 04/058911, based on the conditions described here
- the substrates used are glass plates coated with structured ITO (indium tin oxide) of thickness 50 nm.
- the OLEDs have the following layer structure: Substrate / p-doped hole transport layer (HTL1) / hole transport layer (HTL2) / p-doped hole transport layer (HTL3) / hole transport layer (HTL4) /
- Emission Layer Emission Layer
- ETL Electron Transport Layer
- Electron injection layer EIL
- cathode is formed by a 100 nm thick aluminum layer.
- the materials required to make the OLEDs are shown in Table 1, the detailed constructions of the fabricated devices in Table 2.
- the emission layer always consists of at least one matrix material (host material, host material) and an emitting dopant (dopant, emitter), which is admixed to the matrix material or the matrix materials by co-evaporation in a specific volume fraction.
- the electron transport layers or the hole transport layers may consist of a mixture of two materials.
- the OLEDs are characterized by default.
- the electroluminescence spectra, the current efficiency (measured in cd / A), the power efficiency (measured in Im / W) and the external quantum efficiency (EQE, measured in percent) as a function of the luminance are calculated from current-voltage-luminance characteristic curves (IUL characteristic curves) assuming a lambertian radiation characteristic, as well as the
- the electroluminescence spectra are determined at a luminance of 1000 cd / m 2 and from this the CIE 1931 x and y color coordinates are calculated.
- the term EQE @ 10 mA / cm 2 denotes the external quantum efficiency at a current density of 10 mA / cm 2 .
- LD80 @ 50 mA / cm 2 is the life expectancy until the OLED has dropped to 80% of the initial intensity at a starting current at a constant current of 50mA / cm 2 .
- HIM1 F4TCNQ (3%) HI 1 NPB: F4TCNQ (3%) NPB H1: SEB1 (5%) ETM (50%): LiQ (50%) LiQ
- HIM1 F4TCNQ (3%) HI 1 HTMV1: F4TCNQ (3%) HTMV1 H1: SEB1 (5%) ETM (50%): LiQ (50%) LiQ
- HIM1 F4TCNQ (3%) HIM1 HTMV2: F4TCNQ (3%) HTMV2 H1: SEB1 (5%) ETM (50%): LiQ (50%) LiQ
- HIM1 F4TCNQ (3%) HIM1 HTM4: F4TCNQ (3%) HTM4 H1: SEB1 (5%) ETM (50%): LiQ (50%) LiQ
- HIM1 F4TCNQ (3%) HIM1 NPB: F4TCNQ (3%) NPB H2: TEG (10%) ETM (50%): LiQ (50%) LiQ
- HIM1 F4TCNQ (3%) HI 1 HTMV1: F4TCNQ (3%) HTMV1 H2: TEG (10%) ETM (50%): LiQ (50%) LiQ
- HIM1 F4TCNQ (3%) HIM1 HTMV2: F4TCNQ (3%) HT V2 H2: TEG (10%) ETM (50%): LiQ (50%) LiQ
- HIM1 F4TCNQ (3%) HI 1 HTM1: F4TCNQ (3%) HT 1 H2: TEG (10%) ETM (50%): LiQ (50%) LiQ
- HIM1 F4TCNQ (3%) HI 1 HTM2: F4TCNQ (3%) HTM2 H2: TEG (10%) ETM (50%): LiQ (50%) LiQ
- HIM1 F4TCNQ (3%) HIM1 HTM3: F4TCNQ (3%) HTM3 H2: TEG (10%) ETM (50%): LiQ (50%) LiQ
- HTM1 to HTM5 E1 - E9. Further, as a reference
- NPB NPB
- HTMV1 and HTMV2 manufactured V1 - V6
- the compounds are used as hole transport materials or as
- Electron blocking materials used in a corresponding layer When used as a hole transport material, the compounds in the present examples are doped with a p-type dopant. However, the compounds can also be used in other functions, for example as hole transport materials without p-doping or as host materials for phosphorescent emitters.
- the lifetime LT80 is also 50 mA / cm 2 for all samples according to the invention E1 (260 h), E2 (285 h), E3 (290 h), E4 (290 h) and E5
- the examples according to the invention show very good values for the quantum efficiency and for the lifetime, both in the case of fluorescent OLEDs and in the case of phosphorescent OLEDs.
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- Crystallography & Structural Chemistry (AREA)
- Inorganic Chemistry (AREA)
- Electroluminescent Light Sources (AREA)
- Indole Compounds (AREA)
- Plural Heterocyclic Compounds (AREA)
- Photovoltaic Devices (AREA)
Abstract
Description
Claims
Priority Applications (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| EP13782978.4A EP2922932B1 (de) | 2012-11-23 | 2013-10-25 | Materialien für elektronische vorrichtungen |
Applications Claiming Priority (3)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| EP12007922 | 2012-11-23 | ||
| PCT/EP2013/003218 WO2014079527A1 (de) | 2012-11-23 | 2013-10-25 | Materialien für elektronische vorrichtungen |
| EP13782978.4A EP2922932B1 (de) | 2012-11-23 | 2013-10-25 | Materialien für elektronische vorrichtungen |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| EP2922932A1 true EP2922932A1 (de) | 2015-09-30 |
| EP2922932B1 EP2922932B1 (de) | 2019-06-12 |
Family
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Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP13782978.4A Active EP2922932B1 (de) | 2012-11-23 | 2013-10-25 | Materialien für elektronische vorrichtungen |
Country Status (5)
| Country | Link |
|---|---|
| US (1) | US10020450B2 (de) |
| EP (1) | EP2922932B1 (de) |
| JP (1) | JP6370800B2 (de) |
| KR (2) | KR20210056453A (de) |
| WO (1) | WO2014079527A1 (de) |
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| KR20140145428A (ko) * | 2013-06-13 | 2014-12-23 | 에스케이케미칼주식회사 | 유기전계발광소자용 화합물 및 그를 포함하는 유기전계발광소자 |
| KR102269920B1 (ko) * | 2014-02-25 | 2021-06-28 | 삼성디스플레이 주식회사 | 유기 화합물 및 이를 포함하는 유기 발광 장치 |
| KR101818582B1 (ko) | 2014-11-04 | 2018-01-15 | 삼성에스디아이 주식회사 | 유기 광전자 소자용 화합물, 이를 포함하는 유기 광전자 소자 및 표시장치 |
| KR101897041B1 (ko) | 2015-05-22 | 2018-09-10 | 삼성에스디아이 주식회사 | 유기 광전자 소자용 화합물, 유기 광전자 소자용 조성물, 및 이를 포함하는 유기 광전자 소자 및 표시장치 |
| US9525134B1 (en) * | 2015-08-11 | 2016-12-20 | E I Du Pont De Nemours And Company | Hole transport materials |
| CN119192058A (zh) * | 2015-09-24 | 2024-12-27 | 株式会社Lg化学 | 化合物和包含其的有机电子器件 |
| KR101905982B1 (ko) * | 2015-10-26 | 2018-10-10 | 주식회사 엘지화학 | 아민 화합물 및 이를 포함하는 유기 발광 소자 |
| KR102617611B1 (ko) * | 2015-12-16 | 2023-12-27 | 솔루스첨단소재 주식회사 | 유기 화합물 및 이를 포함하는 유기 전계 발광 소자 |
| WO2018155826A1 (ko) * | 2017-02-24 | 2018-08-30 | 주식회사 엘지화학 | 신규한 화합물 및 이를 이용한 유기발광 소자 |
| KR102021584B1 (ko) * | 2017-02-24 | 2019-09-16 | 주식회사 엘지화학 | 신규한 화합물 및 이를 이용한 유기발광 소자 |
| CN110325524A (zh) * | 2017-03-02 | 2019-10-11 | 默克专利有限公司 | 用于有机电子器件的材料 |
| TW201843143A (zh) * | 2017-03-13 | 2018-12-16 | 德商麥克專利有限公司 | 含有芳基胺結構之化合物 |
| KR20250035612A (ko) | 2017-11-23 | 2025-03-12 | 메르크 파텐트 게엠베하 | 전자 디바이스용 재료 |
| KR20210097733A (ko) | 2018-11-30 | 2021-08-09 | 메르크 파텐트 게엠베하 | 전자 디바이스용 화합물 |
| TW202035345A (zh) | 2019-01-17 | 2020-10-01 | 德商麥克專利有限公司 | 用於有機電致發光裝置之材料 |
| KR102179928B1 (ko) * | 2019-01-30 | 2020-11-17 | 엘티소재주식회사 | 화합물, 유기 광전자 소자 및 표시 장치 |
| CN112909188B (zh) * | 2019-12-03 | 2023-09-01 | 北京夏禾科技有限公司 | 一种有机电致发光器件 |
| TW202208594A (zh) | 2020-05-27 | 2022-03-01 | 德商麥克專利有限公司 | 電子裝置用材料 |
| CN114843410B (zh) | 2021-01-30 | 2024-10-18 | 北京夏禾科技有限公司 | 一种叠层有机电致发光器件 |
| CN115411200B (zh) * | 2021-05-28 | 2024-10-15 | 北京夏禾科技有限公司 | 一种有机电致发光器件 |
| CN116768783B (zh) * | 2022-03-18 | 2026-04-17 | 江苏三月科技股份有限公司 | 一种芳香族胺类化合物及包含其的有机电致发光器件 |
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| JP2529099B2 (ja) * | 1986-02-28 | 1996-08-28 | キヤノン株式会社 | 電子写真感光体 |
| JP2002075648A (ja) * | 2000-08-29 | 2002-03-15 | Mitsui Chemicals Inc | 有機電界発光素子 |
| US6713193B2 (en) * | 2002-05-14 | 2004-03-30 | Lightronik Technology Inc. | Organic EL device |
| GB0226010D0 (en) * | 2002-11-08 | 2002-12-18 | Cambridge Display Tech Ltd | Polymers for use in organic electroluminescent devices |
| US7651787B2 (en) * | 2003-02-19 | 2010-01-26 | Lg Display Co., Ltd. | Organic electroluminescent device |
| EP1491568A1 (de) * | 2003-06-23 | 2004-12-29 | Covion Organic Semiconductors GmbH | Halbleitende Polymere |
| JP5112601B2 (ja) * | 2003-10-07 | 2013-01-09 | 三井化学株式会社 | 複素環化合物および該化合物を含有する有機電界発光素子 |
| US7090930B2 (en) * | 2003-12-05 | 2006-08-15 | Eastman Kodak Company | Organic element for electroluminescent devices |
| DE102004020298A1 (de) * | 2004-04-26 | 2005-11-10 | Covion Organic Semiconductors Gmbh | Elektrolumineszierende Polymere und deren Verwendung |
| CN101076528B (zh) * | 2004-12-10 | 2012-06-20 | 三菱化学株式会社 | 有机化合物、电荷传输材料和有机电致发光器件 |
| JP4893173B2 (ja) * | 2005-09-13 | 2012-03-07 | 三菱化学株式会社 | 有機電界発光素子用組成物及び有機電界発光素子 |
| JP5364089B2 (ja) * | 2007-04-13 | 2013-12-11 | チェイル インダストリーズ インコーポレイテッド | 正孔輸送ユニットと電子輸送ユニットとを含む有機光電素子用材料及びこれを含む有機光電素子 |
| JP5444594B2 (ja) * | 2007-07-09 | 2014-03-19 | コニカミノルタ株式会社 | 有機エレクトロルミネッセンス素子、表示装置及び照明装置 |
| JP2009076817A (ja) * | 2007-09-25 | 2009-04-09 | Sony Corp | 有機電界発光素子および表示装置 |
| JP2009170808A (ja) * | 2008-01-18 | 2009-07-30 | Mitsui Chemicals Inc | 有機電界発光素子 |
| JP5631559B2 (ja) * | 2008-05-16 | 2014-11-26 | 株式会社半導体エネルギー研究所 | 芳香族アミン化合物および発光素子 |
| JP5526521B2 (ja) * | 2008-09-29 | 2014-06-18 | 富士ゼロックス株式会社 | カルバゾール化合物、カルバゾリル基含有ポリエステル、塗膜用組成物、有機電界発光素子、及び表示媒体 |
| WO2010095621A1 (ja) * | 2009-02-18 | 2010-08-26 | 出光興産株式会社 | 芳香族アミン誘導体及び有機エレクトロルミネッセンス素子 |
| KR101115036B1 (ko) * | 2009-08-18 | 2012-03-06 | 덕산하이메탈(주) | 티안트렌 구조를 가지는 화합물 및 이를 이용한 유기전기소자, 그 단말 |
| JP5678487B2 (ja) * | 2010-04-09 | 2015-03-04 | ソニー株式会社 | 有機el表示装置 |
| KR20110132721A (ko) * | 2010-06-03 | 2011-12-09 | 다우어드밴스드디스플레이머티리얼 유한회사 | 신규한 유기 발광 화합물 및 이를 채용하고 있는 유기 전계 발광 소자 |
| CN103209975B (zh) * | 2010-09-16 | 2016-01-13 | 日东电工株式会社 | 用于有机发光装置的取代的联吡啶 |
| JP2012062450A (ja) * | 2010-09-17 | 2012-03-29 | Idemitsu Kosan Co Ltd | 新規重合性単量体と高分子化合物、それを用いた有機デバイス用材料、有機エレクトロルミネッセンス用材料、有機デバイス及び有機エレクトロルミネッセンス素子 |
| EP2749625B1 (de) | 2012-02-27 | 2017-12-20 | LG Chem, Ltd. | Organische lichtemittierende diode |
| KR101566578B1 (ko) * | 2012-02-27 | 2015-11-05 | 주식회사 엘지화학 | 유기 발광 소자 |
| KR102098061B1 (ko) * | 2012-03-19 | 2020-04-08 | 덕산네오룩스 주식회사 | 유기전기소자용 화합물, 이를 이용한 유기전기소자 및 그 전자 장치 |
| KR20140018789A (ko) * | 2012-07-31 | 2014-02-13 | 에스케이케미칼주식회사 | 유기전계발광소자용 화합물 및 이를 포함하는 유기전계발광소자 |
-
2013
- 2013-10-25 WO PCT/EP2013/003218 patent/WO2014079527A1/de not_active Ceased
- 2013-10-25 EP EP13782978.4A patent/EP2922932B1/de active Active
- 2013-10-25 KR KR1020217013996A patent/KR20210056453A/ko not_active Ceased
- 2013-10-25 KR KR1020157016560A patent/KR102254278B1/ko active Active
- 2013-10-25 JP JP2015543331A patent/JP6370800B2/ja active Active
- 2013-10-25 US US14/443,549 patent/US10020450B2/en active Active
Non-Patent Citations (1)
| Title |
|---|
| See references of WO2014079527A1 * |
Also Published As
| Publication number | Publication date |
|---|---|
| WO2014079527A1 (de) | 2014-05-30 |
| US10020450B2 (en) | 2018-07-10 |
| KR20150088295A (ko) | 2015-07-31 |
| KR102254278B1 (ko) | 2021-05-20 |
| JP2016507475A (ja) | 2016-03-10 |
| JP6370800B2 (ja) | 2018-08-08 |
| US20150318484A1 (en) | 2015-11-05 |
| EP2922932B1 (de) | 2019-06-12 |
| KR20210056453A (ko) | 2021-05-18 |
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